Chapter II: (p. 15), or certain generations of virgin females are
wingless, for example aphids (pp. 18-19) and gall-flies (pp. 94-5). Insects may thus become secondarily wingless, that is to say be manifestly the offspring of winged parents, and such wingless forms may on the other hand give rise to offspring or descendants with well-developed wings. Frequently, as in the case of the aphids, many wingless generations intervene between two winged generations. A striking illustration of this fact is afforded by an aquatic bug, _Velia currens_, commonly to be seen skating over the surface of running water. The adults of Velia are nearly always wingless, but now and then the naturalist meets with a specimen provided with functional wings, the possession of which enables the insect to make its way to a fresh stream. Moreover there are whole orders of parasitic insects, such as the lice and fleas, which, showing clear affinity to orders of winged insects, are believed to be secondarily wingless. These orders are designated by Sharp 'Anapterygota.' And from the analogy of the periodic loss and recovery of wings in various generations of the same species, he has concluded that the gap between the exopterygote and the endopterygote method of development may have been bridged by an anapterygote condition; that the ancestors of those insects with complete transformations were the wingless descendants of primitive insects which grew their wings from visible external rudiments, and that in later times re-acquiring wings, they developed these organs in a new way, from inwardly directed rudiments or imaginal buds.
This theory of Sharp's is original, daring, and ingenious, but the loss and re-acquisition of wings which it presupposes is difficult to imagine in large groups during a prolonged evolutionary history, while the sudden appearance of a totally new mode of wing-growth in the offspring of wingless insects would be an extreme example of discontinuity in development.
On the whole the most probable suggestion which can be made as to the origin of 'complete' transformation in insects is that the instar in which wings were first visible externally became later and later in the course of the evolution of the more highly organised groups. In this way a gradual transition from the exopterygote to the endopterygote type of life-story is at least conceivable. It will be remembered that a may-fly (p. 33) undergoes a moult after acquiring functional wings, emerging into the air as a 'sub-imago.' In not a few endopterygote insects, the pupa shows more or less activity, swimming through water intermittently (gnats) or just before the imago has to emerge (caddis-flies); working its way out of the ground (crane-flies) or coming half-way out of its cocoon (many moths). The pupa of the higher insects almost certainly corresponds with the may-fly's sub-imago, and the facts just recalled as to remnants of pupal activity suggest that in the ancestors of endopterygote insects what is now the pupal instar was represented by an active nymphal or sub-imaginal stage, possibly indeed by more than one stage, as Packard and other writers have stated that pupae of bees and wasps undergo two or three moults before the final exposure of the imago. Such an early pupal instar has been defined as a 'pro-nymph' or a 'semi-pupa.' Examples have been given of the exceptional passive condition of the penultimate instar in Exopterygota. The instars preceding this presumably had originally outward wing-rudiments in all insect life-histories, and the endopterygote condition was attained by the postponement of the outward appearance of these to successively later stages. The leg and wing rudiments of the male coccid (pp. 20-1) beneath the cuticle of the second instar are strictly comparable to imaginal buds, and these are present in one instar of what is generally regarded as an exopterygote life-history. The first instar in all insects has no visible wing-rudiments, but when they grow outwardly from the body, they necessarily become covered with cuticle, so that they must be visible after the first moult. There is no supreme difficulty in supposing that the important change was for these early rudiments to become sunk into the body, so that the cuticle of the second, and, later, of the third and succeeding instars, showed no outward sign of their presence. This suggestion is confirmed by Heymons' (1896, 1907) observation of the occasional appearance of outward wing-rudiments on the thoracic segments of a mealworm, the larva of the beetle _Tenebrio molitor_, and by F. Silvestri's discovery (1905) of a 'pro-nymph' stage with short external wing-rudiments between the second larval and the pupal instars of the small ground-beetle _Lebia scapularis_. Whatever may be the exact explanation of these abnormalities, they show that in the life-story of the higher insects outward wing-rudiments may even yet appear before the pupal stage, confirming our belief that such appearance is an ancestral character. The inward growth of these wing-rudiments may well have been correlated with a difference in form between the newly-hatched insect and its parent. As this difference persisted until a constantly later stage, and the pre-imaginal instar became necessarily a stage for reconstruction, the present condition of complete metamorphosis in the more highly organised orders was finally attained.
To explain satisfactorily these complex life-stories is however admittedly a difficult task. The acquisition of wings is, as we have seen, a dominating feature in them all, but if we try to go yet a step farther back and speculate on the origin of wings in the most primitive exopterygote insects, the task becomes still more difficult. Many years ago Gegenbaur (1878) was struck by the correspondence of insect wings to the tracheal gills of may-fly larvae, which are carried on the abdominal segments somewhat as wings are on the thoracic segments. But Börner has recently (1909) brought forward evidence that these abdominal gills really correspond serially with legs. Moreover Gegenbaur's theory suggests that the ancestral insects were aquatic, whereas the presence of tubes for breathing atmospheric air in well-nigh all members of the class, and the fact that aquatic adaptations, respiratory and otherwise, in insect-larvae are secondary force the student to regard the ancestral insects as terrestrial. It is indeed highly probable that insects had a common origin with aquatic Crustacea, but all the evidence points to the ancestors of insects having become breathers of atmospheric air before they acquired wings. How the wings arose, what function their precursors performed before they became capable of supporting flight, we can hardly even guess.
Our study of the life-story of insects, therefore, while it has taught us something of what is going on around us to-day, and has given us hints of the course of a few threads of that long life-story which runs through the ages, brings us face to face with the most instructive, if humbling fact that 'there are many more things of which we are ignorant.' The passage from creeping to flight, as the caterpillar becomes transformed into the butterfly, was a mystery to those who first observed it, and many of its aspects remain mysterious still. Perhaps the most striking result of the study of insect transformation is the appreciation of the divergent specialisation of larva and imago, and it is a suggestive thought that of the two the larva has in many cases diverged the more from the typical condition. The caterpillar crawling over the leaf, or the fly-grub swimming through the water, may thus be regarded as a creature preparing for a change to the true conditions of its life. It is a strange irony that the preparation is often far longer than the brief hours of achievement. But the light which research has thrown on the nature of these wonderful life-stories, the demonstration of the unseen presence and growth within the insect, during its time of preparation among strange surroundings, of the organs required for service in the coming life amid its native air, confirm surely the intuition of the old-time students, who saw in these changes, so familiar and yet so wonderful, a parable and a prophecy of the higher nature of man.
OUTLINE CLASSIFICATION OF INSECTS
Class INSECTA or HEXAPODA.
Sub-class A, APTERYGOTA.
Order 1. _Thysanura_ (Bristle-tails).
2. _Collembola_ (Spring-tails).
Sub-class B, EXOPTERYGOTA.
Order 1. _Dermaptera_ (Earwigs).
2. _Orthoptera_ (Cockroaches, Grasshoppers, Crickets).
3. _Plecoptera_ (Stone-flies).
4. _Isoptera_ (Termites or 'White Ants').
5. _Corrodentia_
(_a_) _Copeognatha_ (Book-lice).
(_b_) _Mallophaga_ (Biting-lice).
6. _Ephemeroptera_ (May-flies).
7. _Odonata_ (Dragon-flies).
8. _Thysanoptera_ (Thrips).
9. _Hemiptera_
(_a_) _Heteroptera_ (Bugs, Pond-skaters)
(_b_) _Homoptera_ (Cicads, 'Greenfly,' Scales).
10. _Anoplura_ (Lice).
Sub-class C, ENDOPTERYGOTA.
Order 1. _Neuroptera_ (Alder-flies, Ant-lions, Lacewings).
2. _Coleoptera_ (Beetles).
3. _Mecaptera_ (Scorpion-flies).
4. _Trichoptera_ (Caddis-flies).
5. _Lepidoptera_ (Moths and Butterflies).
6. _Diptera_ (Two-winged flies)
(_a_) _Orthorrhapha_ (Crane-flies, Midges, Gnats)
(_b_) _Cyclorrhapha_ (Hover-flies, House-flies, Bot-flies, &c).
7. _Siphonaptera_ (Fleas).
8. _Hymenoptera_
(_a_) _Symphyta_ (Saw-flies)
(_b_) _Apocrita_ (Gall-flies, Ichneumon-flies, Wasps, Bees, Ants).
TABLE OF GEOLOGICAL SYSTEMS
These names, given by geologists to the various divisions of rocks, as indicated by the fossils entombed in them, are arranged in 'descending' order, the more recent formations above, the more ancient below, as newer deposits necessarily lie over older beds.
CALNOZOIC OR TERTIARY GROUP.
Pleistocene. Pliocene. Miocene. Eocene.
MESOZOIC OR SECONDARY GROUP.
Cretaceous. Jurassic. Triassic.
PALAEOZOIC OR PRIMARY GROUP.
Permian. Carboniferous. Devonian. Silurian. Cambrian.
BIBLIOGRAPHY
The following list of some books and papers, referred to in this little volume or of especial service to the author in its preparation, is needless to say very far from exhaustive. To save space, titles are often abbreviated. Most of the works in the general list (A) contain extensive lists of literature on insects and their transformations, these should be consulted by the serious student.
A. GENERAL WORKS.
1909. C. Börner. Die Verwandlungen der Insekten. _Sitzb. d. Gesellsch.
naturforsch. Freunde, Berlin._
1869. F. Brauer. Betrachtung über die Verwandlung der Insekten.
_Verhandl. der K.K. zool.-bot. Gesellschaft in Wien._ XIX.
1899. G.H. Carpenter. Insects, their Structure and Life. London.
1859. C. Darwin. The Origin of Species. London.
1909. P. Deegener. Die Metamorphose der Insekten. Leipzig.
1906. J.W. Folsom. Entomology. London.
1878. C. Gegenbaur. Grundriss der Vergleichende Anatomie. Leipzig.
1906. A. Handlirsch. Die fossilen Insekten. Leipzig.
1904. L.F. Henneguy. Les Insectes. Paris.
1907. R. Heymons. Die verschiedenen Formen der Insectenmetamorphose.
_Ergebnisse der Zoologie._ I.
1899. A. Lameere. La raison d'être des Metamorphoses chez les Insectes.
_Ann. Soc. Entom. Bruxelles._ XLIII.
1874. J. Lubbock. The Origin and Metamorphoses of Insects. London.
1895. L.C. Miall. (_a_) The Transformations of Insects. _Nature._ LIII.
1895. ---- (_b_) The Natural History of Aquatic Insects. London.
1908. ---- Injurious and Useful Insects. 2nd edition. London.
1839. G. Newport. Insects. _Todd Cyclopaedia._ II. London.
1898. A.S. Packard. Text book of Entomology. New York.
1734-42. R.A.F. de Réaumur. Mémoires pour servir à l'Histoire naturelle
et à l'anatomie des Insectes. Paris.
1895-8. D. Sharp. The Cambridge Natural History, V, VI. London.
1899. ---- Some points in the Classification of Insects. IV. _Internat.
Zoolog. Congress._
1902. ---- Insects in _Encycl. Brit._ 10th Edition, XXIX. London.
1910. ---- and G.H. Carpenter. Hexapoda in _Encycl. Brit._ 11th
Edition. Cambridge.
1737. J. Swammerdam. Biblia Naturae. Leyden (incorporates works on
Insects published during the author's lifetime 1669-75).
1909. F.V. Theobald. Insect Pests of Fruit. Wye.
B. SPECIAL WORKS.
1881. H. Adler. Ueber den Generationswechsel den Eichen-Gallwespen.
_Zeitsch. f. wissensch. Zoologie._ XXXV.
1896. ---- and C.R. Straton. Alternating Generations. Oxford.
1902. J. Anglas. Nouvelles Observations sur les Métamorphoses Internes.
_Arch. d'Anat. Microscop._ IV.
1911. E.E. Austen. Handbook of the Tsetse-Flies. London (Brit. Museum).
1909. F. Balfour-Browne. Life-History of Agrionid Dragonfly. _Proc.
Zool. Soc. Lond._
1893, &c. C.G. Barrett. Lepidoptera of the British Islands. London.
1890. H. Beaurégard. Les Insectes Vésicants. Paris.
1909. C. Börner. Die Tracheenkiemen der Ephemeriden. _Zoolog. Anz._
xxxiii.
1863. F. Brauer. Monographie der Oestriden. Wien.
1894. C. Brongniart. Récherches pour servir à l'histoire des Insectes
fossiles des Temps Primaires. St Etienne.
1893. T.A. Chapman. Structure of Pupae of Heterocerous Lepidoptera.
_Trans. Entom. Soc. Lond._
1891. H. Dewitz. Das geschlossene Tracheensystem bei Insektenlarven.
_Zoolog. Anz._ xiii.
1857-8. J.H. Fabre. L'Hypermétamorphose et les Moeurs des Meloides.
_Ann. Sci. Nat._ (_Zool._), (4). VII. IX.
1869. M. Ganin. Die Entwicklungsgeschichte bei den Insekten. _Zeitsch.
f. wissensch. Zoolog._ xix.
1894. J. Gonin. La Métamorphose des Lepidoptères. _Bull. Soc. Vaud.
Sci. Nat._ xxx.
1870. O. Grimm. Die ungeschechtliche Fortpflanzung einer Chironomus.
_Mem. Acad. Impér. St Pétersbourg_ (7). xv.
1890. W. Hatchett-Jackson. Morphology of the Lepidoptera. _Trans. Linn.
Soc. (Zool.) Lond._ (2). v.
1896. R. Heymons. Flügelbildung bei der Larve von Tenebrio molitor.
_Sitzb. d, Gesellsch. Naturforsch. Freunde, Berlin._
1906. ---- Ueber die ersten Jugendformen von Machilis alternata. _Ib._
1908. W. Kahle. Die Paedogenesis der Cecidomyiden. _Zoologica._ IV.
1913. V.L. Kellogg. Distribution and Species-forming of Ectoparasites.
_Amer. Naturalist._ XLVII.
1887. A. Kowalevsky. Die nachembryonale Entwicklung der Musciden.
_Zeitsch. f. wissensch. Zool._ XLV.
1904. O.H. Latter. Natural History of Common Animals (chaps. III, IV,
V). Cambridge.
1890-95. B.T. Lowne. The Blowfly, 2 vols. London.
1863. J. Lubbock. Development of Chloeon. _Trans. Linn. Soc. Lond._
XXIII.
1762. P. Lyonet. Traité anatomique de la Chenille. Haag.
1669. M. Malpighi. De Bombyce. London.
1898. C.L. Marlatt. The periodical Cicada. _Entom. Bull._ 14, _U.S.
Dept. Agric._
1898. G.A.K. Marshall. Seasonal Dimorphism in Butterflies. _Ann. Mag.
Nat. Hist._ (7). II.
1900. L.C. Miall and A.B. Hammond. The Harlequin Fly. Oxford.
1901-3. R. Newstead. Coccidae of the British Isles. London.
1877. J.A. Palmén. Zur Morphologie des Tracheensystems. Leipzig.
1891. E.B. Poulton. External Morphology of the Lepidopterous Pupa.
_Trans. Linn. Soc. Zool._ (2). V.
1892. ---- Colour-relation between Lepidopterous Larvae &c. and their
surroundings. _Trans. Entom. Soc. Lond._
1880. C.V. Riley. Pupation of Butterflies. _Proc. Amer. Assoc._ XXVIII.
1902. E.D. Sanderson. Report of Entomologist. Delaware. U.S.A.
1885. E.O. Schmidt. Metamorphose und Anatomie des männlichen
Aspidiotus. _Archiv f. Naturgeschichte._ LI.
1885. S.H. Scudder. Insekten in Zittel's Paleontologie. II.
1907. A.J. Siltala. Die postembryonale Entwicklung der
Trichopteren-Larven. _Zoolog. Jahrb. Suppl._ IX.
1905. F. Silvestri. Metamorfosi e Costumi della Lebia scapularis.
_Redia._ II.
1900. J.B. Smith. The Apple Plant-louse. _New Jersey Agric. Exp.
Station Bull._ 143.
1888. J. Van Rees. Die innere Metamorphose von Musca. _Zoolog. Jahrb.
Anat._ III.
1911. K.W. Verhoeff. Ueber Felsenspringer, Machiloidea. _Zoolog. Anz._
XXXVIII.
1865. N. Wagner. Die viviparen Gallmückenlarven. _Zeitsch. f.
wissensch. Zoolog._ XV.
1901. E. Wasmann. Termitoxenia. _Zeitsch. f. wissensch. Zoolog._ LXX.
1864. A. Weismann. Die nachembryonale Entwicklung der Musciden.
_Zeitsch. f. wissensch. Zoolog._ XIV.
1865. ---- Die Metamorphose von Corethra. _Ib._ XVI.
1876. ---- Studien zur Descendenz-Theorie. Leipzig. (English
Translation by R. Meldola, London, 1882.)
INDEX
_Abraxas grossulariata_, 60, 83, 97-8
Adaptation of larvae, 57, 79, 114
Adephaga, 51
Adler, H., 94
Aeschnidae, 27, 29, 31
Agrionidae, 27, 28
_Agrotis segetum_, 98
Air-tubes, 2, 11, 23, 47, 70, 77, 87, 120
Alternation of generations, 17, 94
Ametabola, 11, 35
Anapterygota, 116
Anglas, J., 46
Ant-lions, 57
Ants, 64, 66
Aphidae, 17-20, 116
_Aphis pomi_, 18-19
Aphis-lion, 57
Apterygota, 41, 110
Aquatic insects, 23-34, 76-9, 120
_Araschnia levana_ and var. _prorsa_, 103
_Arctia caia_, 98
Arctiadae, 59
Arthropoda, 9
Austen, E.E., 91
Avebury, Lord, _see_ Lubbock, J.
Balfour-Browne, F., 28
Bark-beetles, 55
Barrett, C.G., 96, 99
Beaurégard, H., 56
Bees, 40, 46, 64, 83
Beetles, 40, 50-7, 80, 107, 112-3, 119
Bell Moths, 62
Bird-lice, 108
Birth, 18, 91
_Blatta orientalis_, 15
Blister-beetles, 56
Blowfly or Bluebottle, 43, 44, 46, 67, 71-3, 93, 114
Börner, C., 32, 120
Bot-flies, 73-4, 89, 91
Brain, 44
Brauer, F., 6, 52, 56, 67, 109
Bristle-tails, 11
Brongniart, C., 106
Butterflies, 1, 83, 95-6, 114
Cabbage-butterflies, 39, 41, 85, 100-1
Cabbage-fly, 73
Caddis-flies, 62-3, 86, 117
Cainozoic insects, 107
Calliphora, 43.
_See also_ Blowfly
Campodeiform larvae, 52, 56, 111
Carabidae, 52
Carboniferous insects, 107
_Carpocapsa pomonella_, 99-100
Carrion-beetles, 50
Caterpillar, 4, 36, 49, 58-62, 95-101, 109, 114
Cecidomyidae, 68-70, 90
Cerambycidae, 55
Cercopods, 12, 15
Chafers, 52
Chapman, T.A., 81, 84
Chironomus, 43, 77, 87, 91
Chloeon, 33
Chrysalis, 82.
_See also_ Pupa
Chrysomelidae, 53.
_See also_ Leaf-beetles
Chrysopa, 57
Cicads, 22, 93, 110
Classification, 122
Clearwing Moths, 62
Click-beetles, 52, 93
Clothes-moths, 62
Coccidae, 20, 110, 118
Coccinella, 113
Cockroaches, 11, 14, 15, 107, 115
Cocoons, 82
Codling Moth, 62, 99
Coleoptera, 50-6, 80, 112, 119
Collembola, 11
Complete transformation, 35, 107, 119.
_See also_ Endopterygota
Corethra, 43
Cossus, 38, 62, 82, 95
Crane-flies, 67, 70, 93, 117
Cremaster, 83
Crustacea, 7, 120
Culex, 43, 77, 86
Curculionidae, 55
Cuticle, 2, 9, 29, 37, 40, 50, 81, 87, 110
Cynipidae, 94.
_See also_ Gall-flies
Daddy-long-legs, 69-70
Darwin, C., 105
Deegener, P., 6, 114
Devonian insects, 107
Dewitz, H., 28
Digestive system, 10, 45-7
_Diplosis pyrivora_, 70
Diptera, 42, 64, 67-79, 81, 86-8, 91, 94, 107
Divergence between larva and imago, 110, 114, 121
Double-brooded Lepidoptera, 95, 100-4
Dragon-flies, 26-31, 107, 110
Drone-flies, 76
Duration of life, 34, 89, 92-3, 95
Dyticus, 51
Ecdysis, 10.
_See also_ Moult
Ectoderm, 9, 11, 47
Eggar Moths, 59, 89
Eggs, 6, 17-18, 26, 34, 65-7, 71, 90, 94-5, 97
Elateridae, 52
Endopterygota, 41, 49, 108, 112, 115-6
Ephemeroptera, 24.
_See also_ May-flies
Epidermis, 9, 40
Eristalis, 76
Eruciform larvae, 56, 58-70, 111
Evolution, 16, 103, 105-21
Exopterygota, 41, 108, 115-6, 118
Exoskeleton, 9
Fabre, J.H., 56
Fat-body, 47
Feeding-period, 27, 32, 36, 89, 111
Feelers, 1, 4, 42, 71
Fleas, 116
Fore-gut, 47
Free pupa, 80
Gall-flies, 64-6, 94, 115
Gall-midges, 68-70, 90
Ganin, M., 66
_Gastrophilus equi_, 73-4
Gegenbaur, C., 120
Geological history, 106-8, 123
Geometridae, 59
Gills, 24, 27, 32, 78, 87, 114, 120
Glossinia, 91
Glow-worm, 50, 113
Gnats, 43, 77, 86
Goat Moth, 38, 62, 82, 95
Gonin, J., 38, 41
Grasshoppers, 11, 14, 15
Grimm, O., 90
Ground-beetles, 52, 112
Growth, 9
Grub, 63-70.
_See also_ Caterpillar, Larva
Hairs, 59, 82, 98
Hammond, A.R., 43, 77, 87
Handlirsch, A., 106
Harvey, William, 7
Hatchett-Jackson, W., 83
Hawk Moths, 60
Heart, 45
Helodes, 50
Hemerobius, 57
Hemimetabola, 35
Hemiptera, 17, 110
Henneguy, L.F., 45, 48
Heymons, R., 6, 11, 119
Hibernation. _See_ Wintering stages
Hind-gut, 47
Hippoboscidae, 91
Histogenesis and Histolysis, 48
Holometabola, 35
House-fly, 67, 71, 73
Hover-flies, 74-6
Hymenoptera, 58, 64, 94, 107
Hypermetamorphosis, 56
_Hypoderma bovis_, 73-5
Hypodermis, 9
Ichneumon-flies, 64, 66, 82
Imaginal buds or discs, 34-48, 114, 117-8
Imago, 24, 34, 114
Instar, 13, 33, 56, 117-9
Jaws of imago and larva, 2, 4, 5, 32, 42, 89
Jurassic insects, 107
Kahle, W., 90
Kellogg, V.L., 108
Kowalevsky, A., 46
Labium, 2, 27
Lacewing-flies, 57, 107
Ladybirds, 113
Lameere, A., 111
Lampyris, 113
Larva, 4, 22, 26-7, 32, 49-79, 110-15
Larval reproduction, 90
Lasiocampidae, 59, 89
Latter, O.H., 28
Leaf-beetles, 53, 83, 92-3, 113
_Lebia scapularis_, 119
Lepidoptera, 1, 36, 38, 49, 58, 81, 95-104, 107
Libellulidae, 27
Lice, 116
Lipeurus, 108
Longhorn Beetles, 55
Looper caterpillars, 59, 61
Lowne, B.T., 42
Lubbock, J., 6, 32
Lymantriidae, 90
Lyonet, P., 38
Machilis, 11
Maggot, 44, 67, 71-6, 109, 114
Magpie Moth, 60, 82, 97-8
Mallophaga, 108
Mandibles, 4, 17, 26, 58, 67, 86
Mangel-fly, 73
Marlatt, C.L., 93
Marshall, G.A.K., 104
Maxillae, 2, 17, 37, 42
May-flies, 31-4, 107, 110, 117, 120
Meloidae, 56
Mesozoic insects, 107
Metabola, 35
Metamorphosis (in general), 6, 109;
(degrees of in insects) 8, 35, 109, 117-19
Miall, L.C., 6, 28, 33, 43, 77, 78, 87, 97, 113
Mosquito. _See_ Culex, Gnats
Moths, 1, 58-62, 84, 95-100, 117
Moult, 10, 32, 36, 41
_Musca domestica_, 71
Muscidae, 44
Muscles, 47
Nervous system, 44-5
Neuroptera, 57, 80, 112
Newport, G., 41, 44
Noctuidae, 60, 98
Nymph, 15, 28, 33
Oak-apples, 94
Obtect pupa, 81
Odonata, 24.
_See also_ Dragon-flies
_Oestrus ovis_, 91
Oil-beetles, 56, 112
_Orgyia antiqua_, 96-7
Orthoptera, 17, 35, 110
Owl Moths, 60, 98
Packard, A.S., 56, 118
Paedogenesis. _See_ Larval reproduction
Painted Lady Butterfly, 96
Palaeozoic insects, 107
Palmén, J.A., 25
Parasitic insects, 73-4, 108, 116
Parental care, 64-6
Parthenogenesis, 18
Partial transformation, 35, 37
Perla, 24
Permian insects, 107
Phagocytes, 48
Phyllodecta, 53, 113
Phyllotreta, 53
_Pieris brassicae_, 39, 41, 85, 100
_Pieris napi_ and var. _bryoniae_, 102-3
Platygaster, 66
Plecoptera, 24.
_See also_ Stone-flies
Pompilidae, 66-7
Poulton, E.B., 61, 82, 109
Precis, 104
Proctotrypidae, 66
Pro-legs, 4, 58-9, 84, 114
Pro-nymph, 118, 119
Protective coloration, 60-1
_Psylliodes chrysocephala_, 54
Ptinidae, 54
Pupa, 4, 37, 40, 79-88, 114, 117
Puparium, 88
Pupipara, 91
_Pyrameis cardui_, 96
Rat-tailed maggot, 76
Réaumur, R.A.F. de, 8, 28, 33, 41
Reproductive larvae, 90;
pupae, 91
Reproductive organs, 45
_Rhabdophaga heterobia_, 70
Riley, C.V., 83
Sanderson, E.D., 17
Sand-midges, 78
Sarcophaga, 91
Saw-flies, 58-9
Scale-insects, 20.
_See also_ Coccidae
Scarabaeidae, 52
Schmidt, E.O., 21
Scolytidae, 55
Scudder, S.H., 106
Seasonal changes, 89-104
Seasonal dimorphism, 102
Semi-pupa, 118
Sesiidae, 62
Sexual differences, 15, 20-1, 90
Sharp, D., 13, 36, 40, 115
Silk-spinning, 58, 62-3, 82
Silkworms, 82
Silpha, 50
Siltala, A.J., 63
Silvestri, F., 119
Simulium, 78, 87
Smith, J.B., 17
Sphegidae, 66-7
Sphingidae, 60
Spinneret, 58
Spiracles, 2, 23, 70, 72, 77, 86, 87
Spring-tails, 11
Stone-flies, 24, 107, 110
Sub-imago, 33, 117
Sucking insects, 17
Swammerdam, J., 33
Syrphus, 74-6
Tachininae, 73, 91
_Tenebrio molitor_, 119
Termitoxeniidae, 92
Theobald, F.V., 100
Thysanura, 11
Tiger Moths, 59, 82, 98
Timber-beetles, 54
Tineidae, 62
Tipulidae, 70
Tortoiseshell Butterfly, 45, 95
Tortricidae, 62
Tracheal system. _See_ Air-tubes, Spiracles
Transformation. _See_ Metamorphosis
Triassic insects, 107
Trichocera, 70
Trichoptera, 62-3, 76, 80, 86
Tsetse Flies, 91
Turnip-fly, 53, 92, 94
Turnip Moth, 98-9
Tussock Moths, 90, 97
_Vanessa urticae_, 45, 95
Van Rees, J., 42
Vapourer Moth, 96-7, 115
_Velia currens_, 116
Verhoeff, K.W., 11
Vermiculiform larvae, 67, 71-6, 111
Virgin stem-mothers, 18
Viviparous reproduction. _See_ Birth
Wagner, N., 90
Warble-fly, 73-4, 89, 108
Warning coloration, 60
Wasmann, E., 92
Wasps, 46, 64, 66-7, 83
Water-insects. _See_ Aquatic insects
Weevils, 55
Weismann, A., 38, 42, 102
White Butterflies, 41, 83, 85, 100-3
Willow-beetles, 53
Wingless insects, 15, 18, 20, 96, 115
Wing-rudiments, 13, 18, 20, 22, 24, 28, 33, 36-8, 40, 111, 115, 117-19
Wings, 1, 14, 115, 119-20
Winter broods, 102-3
Wintering stages, 93-101
Wireworms, 52, 93
Wood-wasps, 65
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